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INFLUENCE OF SHOCK WAVE ON TURBINE VANE SUCTION SIDE FILM COOLING WITH COMPOUND-ANGLE SHAPED HOLES

机译:冲击波对复合角异形孔涡轮叶片吸气侧膜冷却的影响

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This paper studies the effect of shock wave on turbine vane suction side film cooling using a conduction-free Pressure Sensitive Paint (PSP) technique. Tests were performed in a five-vane annular cascade with a blow-down flow loop facility. The exit Mach numbers are controlled to be 0.7, 1.1, and 1.3, from subsonic to transonic flow conditions. Two foreign gases N_2 and CO_2 are selected to study the effects of two coolant-to-mainstream density ratios, 1.0 and 1.5, on film cooling. Four averaged coolant blowing ratios in the range, 0.4 to 1.6 are investigated. The test vane features 3 rows of radial-angle cylindrical holes around the leading edge, and 2 rows of compound-angle shaped holes on the suction side. Results suggest that the PSP is an accurate technique capable of producing clear and detailed film cooling effectiveness contours at transonic flow conditions. At lower blowing ratio, film cooling effectiveness decreases with increasing exit Mach number. On the other hand, an opposite trend is observed at high blowing ratio. In transonic flow, the rapid rise in pressure caused by shock benefits film-cooling by deflecting the coolant jet toward the vane surface at higher blowing ratio. Results show that denser coolant performs better, typically at higher blowing ratio in transonic flow. Results also show that the optimum momentum flux ratio decreases with density ratio at subsonic condition. In transonic flow, however, the trend is reversed and the peak effectiveness values plateau over a long range of momentum flux ratio.
机译:本文使用无传导压敏涂料(PSP)技术研究了冲击波对涡轮叶片吸力侧膜冷却的影响。测试是在具有排污流回路设备的五叶片环形叶栅中进行的。从亚音速流到跨音速流条件,出口马赫数控制为0.7、1.1和1.3。选择两种异质气体N_2和CO_2来研究两种冷却剂与主流密度比1.0和1.5对薄膜冷却的影响。研究了在0.4至1.6范围内的四个平均冷却剂吹送比。该测试叶片在前缘周围有3排径向角圆柱孔,在吸力侧有2排复角形状的孔。结果表明,PSP是一种准确的技术,能够在跨音速流动条件下产生清晰而详细的薄膜冷却效果轮廓。在较低的吹塑比下,薄膜冷却效率随出口马赫数的增加而降低。另一方面,在高吹风比下观察到相反的趋势。在跨音速流动中,由冲击引起的压力的快速升高通过使冷却剂射流以较高的吹风比朝向叶片表面偏转,从而有利于薄膜冷却。结果表明,致密的冷却液性能更好,通常在跨音速流中具有较高的鼓风比。结果还表明,在亚声速条件下,最佳动量通量比随密度比而减小。但是,在跨音速流动中,趋势发生了逆转,并且峰值有效值在很长的动量通量比范围内都达到了平稳状态。

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